The relation between the energy and momentum of plasmarons in bilayer graphene is investigated within the Overhauser approach, where the electron-plasmon interaction is described as a field theoretical problem. We find that the Dirac-like spectrum is shifted by Delta E(k) similar to 100 divided by 150 meV depending on the electron concentration n(e) and electron momentum. The shift increases with electron concentration as the energy of plasmons becomes larger. The dispersion of plasmarons is more pronounced than in the case of single layer graphene, which is explained by the fact that the energy dispersion of electrons is quadratic and not linear. We expect that these predictions can be verified using angle-resolved photoemission spectrosco...
The spectra of electronic excitations in graphene are calculated using first principles time-depende...
Electron-electron interaction is fundamental in condensed matter physics and can lead to composite q...
International audienceIn this joint experimental and theoretical work, we investigate collective ele...
The relation between the energy and momentum of plasmarons in bilayer graphene is investigated withi...
The many-body correction to the band structure of a quasi-free-standing graphene layer is obtained w...
The interaction between electrons and plasmons in trilayer graphene is investigated within the Overh...
A hallmark of graphene is its unusual conical band structure that leads to a zero-energy band gap at...
The plasmon structure of intrinsic and extrinsic bilayer graphene is investigated in the framework o...
A hallmark of graphene is its unusual conical band structure that leads to a zero-energy band gap at...
Collective plasma excitations of optically dressed Dirac electrons in single and double graphene lay...
Precision measurements of the effective mass m* in high-quality bilayer graphene using the temperatu...
We have investigated the plasmon dispersion in quasi-free-standing monolayer graphene (QFMLG) and ep...
Electron-plasmon coupling in graphene has been shown recently to give rise to a “plasmaron” quasipar...
textIn this thesis we study the effect of electron-electron interactions on Chiral two-dimensional e...
The spectra of electronic excitations in graphene are calculated using first principles time-depende...
Electron-electron interaction is fundamental in condensed matter physics and can lead to composite q...
International audienceIn this joint experimental and theoretical work, we investigate collective ele...
The relation between the energy and momentum of plasmarons in bilayer graphene is investigated withi...
The many-body correction to the band structure of a quasi-free-standing graphene layer is obtained w...
The interaction between electrons and plasmons in trilayer graphene is investigated within the Overh...
A hallmark of graphene is its unusual conical band structure that leads to a zero-energy band gap at...
The plasmon structure of intrinsic and extrinsic bilayer graphene is investigated in the framework o...
A hallmark of graphene is its unusual conical band structure that leads to a zero-energy band gap at...
Collective plasma excitations of optically dressed Dirac electrons in single and double graphene lay...
Precision measurements of the effective mass m* in high-quality bilayer graphene using the temperatu...
We have investigated the plasmon dispersion in quasi-free-standing monolayer graphene (QFMLG) and ep...
Electron-plasmon coupling in graphene has been shown recently to give rise to a “plasmaron” quasipar...
textIn this thesis we study the effect of electron-electron interactions on Chiral two-dimensional e...
The spectra of electronic excitations in graphene are calculated using first principles time-depende...
Electron-electron interaction is fundamental in condensed matter physics and can lead to composite q...
International audienceIn this joint experimental and theoretical work, we investigate collective ele...